RANGE EXTENDER ICE MULTI-PARAMETRIC MULTI-OBJECTIVE OPTIMIZATION

Mikuláš Adámek, R. Toman
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引用次数: 1

Abstract

Range Extended Electric Vehicles (REEV) are still one of the suitable concepts for modern sustainable low emission vehicles. REEV is equipped with a small and lightweight unit, comprised usually of an internal combustion engine with an electric generator, and has thus the technical potential to overcome the main limitations of a pure electric vehicle – range anxiety, overall driving range, heating, and air-conditioning demands – using smaller battery: saving money, and raw materials. Even though several REx ICE concepts were designed in past, most of the available studies lack more complex design and optimization approach, not exploiting the advantageous single point operation of these engines. Resulting engine designs are usually rather conservative, not optimized for the best efficiency. This paper presents a multi-parametric and multi-objective optimization approach, that is applied on a REx ICE. Our optimization toolchain combines a parametric GT-Suite ICE simulation model, modeFRONTIER optimization software with various optimization strategies, and a parametric CAD model, that first provides some simulation model inputs, and second also serves for the final designs’ feasibility check. The chosen ICE concept is a 90 degrees V-twin engine, four-stroke, spark-ignition, naturally aspirated, port injected, OHV engine. The optimization goal is to find the thermodynamic optima for three different design scenarios of our concept – three different engine displacements – addressing the compactness requirement of a REx ICE. The optimization results show great fuel efficiency potential by applying our optimization methodology, following the general trends in increasing ICE efficiency, and power for a naturally aspirated concept.
增程器冰多参数多目标优化
增程电动汽车(REEV)仍然是现代可持续低排放汽车的合适概念之一。REEV配备了一个小而轻的单元,通常由一个内燃机和一个发电机组成,因此在技术上有潜力克服纯电动汽车的主要限制-里程紧张,整体行驶里程,加热和空调需求-使用更小的电池:节省资金和原材料。尽管过去设计了几个REx ICE概念,但大多数可用的研究缺乏更复杂的设计和优化方法,没有利用这些发动机的优势单点操作。由此产生的发动机设计通常相当保守,没有优化到最佳效率。本文提出了一种多参数多目标优化方法,并将其应用于REx ICE。我们的优化工具链结合了参数化GT-Suite ICE仿真模型、具有多种优化策略的modeFRONTIER优化软件和参数化CAD模型,该模型首先提供一些仿真模型输入,其次还用于最终设计的可行性检查。所选择的ICE概念是一个90度v型双发发动机,四冲程,火花点火,自然吸气,端口喷射,OHV发动机。优化目标是为我们的概念找到三种不同设计方案的热力学最优,即三种不同的发动机排量,以满足REx ICE的紧凑性要求。通过应用我们的优化方法,优化结果显示了巨大的燃油效率潜力,遵循了提高内燃机效率的总体趋势,以及自然吸气概念的动力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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